Analyst, Lead Data Engineering

Enterprise Products

• $100K — $130K *
Energy & Utilities
5 - 7 years of experience
Job Overview by Ladders

Qualifications

  • 5+ years as a Data Engineer focusing on data pipeline architecture.
  • Proficient in Python and SQL with over 5 years of programming experience.
  • Experienced in software development lifecycle including testing and deployment processes for 5+ years.
  • Familiar with Python Data Engineering packages like pandas, Numpy, and Scikit-Learn.
  • Demonstrated experience in implementing Data Lakehouse solutions using Apache Iceberg or Delta Lake.
  • Deep understanding of data platform architecture and governance practices.
  • Knowledge of modern technologies such as Apache Airflow and Kubernetes.

Responsibilities

  • Design and implement reliable data pipelines integrating various data sources.
  • Ensure data correctness through quality pipelines and trusted datasets.
  • Create a Data Lakehouse reflecting business operations accurately.
  • Optimize data platform performance, including data modeling support.
  • Guide data visualization and reporting to align with business goals.
  • Automate data lifecycle processes and apply DevOps principles to pipelines.
  • Collaborate with business leaders to develop custom software solutions.

Benefits

  • Dynamic career opportunities within a leading energy organization.
  • Creative and supportive work environment encouraging idea sharing.
  • Access to a diversified cash flow stream in the midstream energy segment.
Full Job Description
Description

Enterprise Products Partners L.P. is one of the largest publicly traded partnerships and a leading North American provider of energy services to producers and consumers of natural gas, natural gas liquids, crude oil, refined products and petrochemicals. Headquartered in Houston, Texas, Enterprise Products is ranked 104th on the FORTUNE 500 and has approximately 6,900 employees. Enterprise's large, integrated portfolio of operationally and geographically diverse assets, highlighted by its approximately 49,000-mile pipeline network, serves as the foundation for organic growth opportunities. The partnership's service offerings include pipeline transportation and gathering, natural gas processing, storage, fractionation, import/export capabilities and marketing. Enterprise also has a marine transportation business that operates primarily on the United States inland and Intracoastal Waterway systems. Additionally, energy professionals are discovering rewarding opportunities with Enterprise Products by putting their skills to work in exciting new growth areas, developing markets and pursuing innovative solutions for meeting the needs of customers and promote energy security for the country.

Tap into the professional possibilities of the largest publicly traded energy partnership that features one of the most diversified cash flow streams in the midstream segment of the energy industry. With dynamic career opportunities and a creative and supportive environment, our unique midstream energy organization offers the chance to share and be recognized for your ideas. Join our team and increase your opportunities for success.

We are currently seeking an experienced Data Engineer to join the Big Dat and Advanced Analytics department. The Data Engineer will work closely with business domain experts to create an Enterprise Data Lakehouse to support data analytic use cases for the midstream oil and gas operations, engineering, and measurements business units. Responsibilities include, but are not limited to:

  • Design and implement reliable data pipelines to integrate disparate data sources into a single Data Lakehouse.
  • Design and implement data quality pipelines to ensure data correctness and building trusted datasets.
  • Design and implement a Data Lakehouse solution which accurately reflects business operations.
  • Assist with data platform performance tuning and physical data model support including partitioning and compaction.
  • Provide guidance in data visualizations and reporting efforts to ensure solutions are aligned to business objectives.
  • Automate and optimize the data lifecycle, find insights from raw data, and applying DevOps principle to data pipelines.
  • Work with business leaders to deliver custom software solutions meeting data needs.
  • Build and support a data platform for data engineering teams to build, deploy and manage applications.


Qualifications

The successful candidate will meet the following qualifications:

  • 5+ years of experience as a Data Engineer designing and maintaining data pipeline architectures.
  • 5+ years of in-depth programming experience in Python and SQL.
  • 5+ years in software development lifecycle experience with software engineering, development, testing, version control, refactoring, and deployment.
  • Experience with common Python Data Engineering packages including pandas, Numpy, Pyarrow, Pytest, Scikit-Learn, and Boto3.
  • Experience in implementing a Data Lakehouse using Apache Iceberg or Delta Lake.
  • Experience with data platform architecture responsible for high-level design, strategy and implementation of data infrastructure, including data modelling, designing scalable architectures and ensuring data governance, security and compliance.
  • Knowledgeable of modern data platform technologies including Apache Airflow, Kubernetes, and S3 Object Storage.
  • Experience with AWS, Snowflake, dbt and Airbyte is preferred.
  • Experience with infrastructure as code, building consistent and repeatable cloud infrastructure.

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